A novel amine- functionalized apple peel biocarbon and beta vulgaris cellulosic fiber-based rigid vinyl-based microwave shielding composite

IF 3.1 3区 化学 Q2 POLYMER SCIENCE Polymer Bulletin Pub Date : 2024-07-28 DOI:10.1007/s00289-024-05443-2
S. Somasundaram, S. Muthukumar, A. Sahaya Anselin Nisha, G. Arul Jothi
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Abstract

This present study investigates an eco-friendly electromagnetic interference (EMI) shielding material developed using cellulosic fiber and apple peel extracted biocarbon for safe electronic applications. The primary aim is to study how the biomass derived biocarbon influences in the wave shielding phenomenon. The fiber and filler both used from waste biomass which promotes circular economy and amine functionalization on both fiber and filler brings the novelty to this research. Further, the prepared composite under hand layup process is further assessed as per ASTM standards. Results revealed that due to the addition of surface modified cellulosic fiber and even dispersion of biochar particle into composite enhance mechanical, dielectric, EMI shielding effectiveness of the composite material. Thus, when compared to the plain vinyl ester resin (V), the amine functionalized cellulosic fiber reinforced composite material (V0) shows improved tensile, flexural and impact strength of 125 MPa, 151 MPa, and 4.1 J respectively. Further, the addition of biochar particle of 3 vol.% into the composite (V2) shows improved hydrophobicity behavior of 107° contact angle and the composite V2 further enhanced the tensile, flexural, impact strength of the composite of 145 MPa, 189 MPa, 5.1 J respectively. Moreover, the increase in biochar of 5 vol.% in to the composite (V3) shows effective dielectric loss of 0.28 in E band and 0.45 in J band. Furthermore, the composite under (V2) of 40 vol.% fiber, and 3 vol.% biochar shows maximum EMI shielding effectiveness of 8 dB in E band and 40 dB in J band, when compared to the 40 vol.% of fiber reinforced composite (V0) of EMI shielding effectiveness 9 dB in E band and 55 dB in J band respectively. Thus, this effective EMI shielding effectiveness, dielectric strength and load carrying capacity, impact strength and cost effective, light weight nature makes the composite material to be utilized in high signal protection applications, sensor, navigational devices, and various electric and electronic gadgets, etc.

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一种新型胺功能化苹果皮生物碳和β-粗纤维素纤维基硬质乙烯基微波屏蔽复合材料
本研究调查了利用纤维素纤维和苹果皮提取的生物碳为安全电子应用开发的环保型电磁干扰(EMI)屏蔽材料。主要目的是研究从生物质中提取的生物碳如何影响波屏蔽现象。纤维和填料均来自促进循环经济的废弃生物质,纤维和填料上的胺官能化为这项研究带来了新意。此外,还根据 ASTM 标准对手糊工艺制备的复合材料进行了进一步评估。结果表明,由于在复合材料中添加了表面改性的纤维素纤维和均匀分散的生物炭颗粒,复合材料的机械性能、介电性能和电磁干扰屏蔽性能都得到了提高。因此,与普通乙烯基酯树脂(V)相比,胺功能化纤维素纤维增强复合材料(V0)的拉伸强度、弯曲强度和冲击强度分别提高了 125 兆帕、151 兆帕和 4.1 焦耳。此外,在复合材料(V2)中添加 3 Vol.% 的生物炭颗粒可改善疏水性能,使接触角达到 107°,复合材料 V2 进一步提高了复合材料的拉伸强度、弯曲强度和冲击强度,分别达到 145 兆帕、189 兆帕、5.1 焦耳。此外,在复合材料(V3)中增加 5 Vol.% 的生物炭后,E 波段和 J 波段的有效介电损耗分别为 0.28 和 0.45。此外,与 EMI 屏蔽效果分别为 E 波段 9 分贝和 J 波段 55 分贝的 40 Vol.% 纤维增强复合材料(V0)相比,由 40 Vol.% 纤维和 3 Vol.% 生物炭组成的复合材料(V2)在 E 波段和 J 波段的最大 EMI 屏蔽效果分别为 8 分贝和 40 分贝。因此,这种有效的 EMI 屏蔽效果、介电强度和承载能力、抗冲击强度以及低成本、重量轻的特性,使得这种复合材料可用于高信号保护应用、传感器、导航设备以及各种电子电气设备等。
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来源期刊
Polymer Bulletin
Polymer Bulletin 化学-高分子科学
CiteScore
6.00
自引率
6.20%
发文量
0
审稿时长
5.5 months
期刊介绍: "Polymer Bulletin" is a comprehensive academic journal on polymer science founded in 1988. It was founded under the initiative of the late Mr. Wang Baoren, a famous Chinese chemist and educator. This journal is co-sponsored by the Chinese Chemical Society, the Institute of Chemistry, and the Chinese Academy of Sciences and is supervised by the China Association for Science and Technology. It is a core journal and is publicly distributed at home and abroad. "Polymer Bulletin" is a monthly magazine with multiple columns, including a project application guide, outlook, review, research papers, highlight reviews, polymer education and teaching, information sharing, interviews, polymer science popularization, etc. The journal is included in the CSCD Chinese Science Citation Database. It serves as the source journal for Chinese scientific and technological paper statistics and the source journal of Peking University's "Overview of Chinese Core Journals."
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